Biological buffers with wide buffering ranges

ABSTRACT

Amines and amine derivatives that improve the buffering range, and/or reduce the chelation and other negative interactions of the buffer and the system to be buffered. The reaction of amines or polyamines with various molecules to form polyamines with differing pKa&#39;s will extend the buffering range, derivatives that result in polyamines that have the same pKa yields a greater buffering capacity. Derivatives that result in zwitterionic buffers improve yield by allowing a greater range of stability.

This application is related to and claims priority from U.S. Provisional Patent application No. 61/124,586 filed Apr. 17, 2008. Application No. 61/124,586 is hereby incorporated by reference.

BACKGROUND

1. Field of the Invention

The present invention relates generally to the field of amines and more particularly to a classes of amines used as buffers in biological systems.

2. Description of the Problem Solved by the Invention

Amines are very useful compounds in the buffering of biological systems. Each class of amine has various limitations which require choosing an amine based on multiple factors to select the best amine. For example, pH buffering range is typically most important, but issues of chelation, and pH range stability, and solubility also come into play. Typically, a suboptimal buffer will result in yields that are well below the potential yield. The invention disclosed improves the yields in fermentation and purification, and improves shelf stability of proteins and amino acids.

SUMMARY OF THE INVENTION

The present invention relates to amines and amine derivatives that improve the buffering range, and/or reduce the chelation and other negative interactions of the buffer and the system to be buffered. The reaction of amines or polyamines with various molecules to form polyamines with differing pKa's will extend the buffering range, derivatives that result in polyamines that have the same pKa yields a greater buffering capacity. Derivatives that result in zwitterionic buffers improve yield by allowing a greater range of stability.

DESCRIPTION OF THE FIGURES

Attention is now directed to the following figures that describe embodiments of the present invention:

FIG. 1 shows the derivation of polyamines and zwitterionic buffers from tromethamine.

FIG. 2 shows the derivation of zwitterionic buffers and polyamines from aminomethylpropanol.

FIG. 3 shows the reaction of 2-methyl-2-nitro-1-propanol with acrylonitrile and its derivatives.

FIG. 4 shows the reaction of 2-nitro-2-ethyl-1,3-propanediol with acrylonitrile and its derivatives where x, y, and n are all integers where x and y are chosen independently, such that x+y=n and n is greater than zero.

FIG. 5 shows the reaction of 2-nitro-2-methyl-1,3-propanediol with acrylonitrile and its derivatives where x, y, and n are all integers where x and y are chosen independently, such that x+y=n and n is greater than zero.

FIG. 6 shows the reaction of tris(hydroxymethyl)nitromethane with acrylonitrile and its derivatives where x, y, z, and n are all integers where x, y and z are chosen independently, such that x+y+z=n and n is greater than zero.

FIG. 7 shows the reaction of 2-nitro-1,3-propanediol with acrylonitrile and its derivatives where x, y, and n are all integers where x and y are chosen independently, such that x+y=n and n is greater than zero.

FIG. 8 shows the reaction of 2-nitro-1-butanol with acrylonitrile and its derivatives.

FIG. 9 shows FIG. 9 shows alkoxylation of aminomethylpropanol.

FIG. 10A shows the synthesis of a very mild, high foaming, surfactant derived from MCA.

FIG. 10B shows the synthesis of a very mild, high foaming, surfactant derived from SVS.

FIG. 11 shows the synthesis of a series of buffers with 2-nitropropane as the starting material.

FIG. 12 shows FIG. 12 shows the synthesis of a series of buffers with 1-nitropropane as a starting material where n and m are integers where m+n is greater than zero and n is greater than or equal to m.

FIG. 13 shows the synthesis of a series of buffers with nitroethane as a starting material where n and m are integers where m+n is greater than zero and n is greater than or equal to m.

FIG. 14 shows the synthesis of a series of buffers with nitromethane as a starting material where x, y, z and n are integers and x+y+z=n and n is greater than zero.

Several drawings and illustrations have been presented to aid in understanding the invention. The scope of the present invention is not limited to what is shown in the figures.

DETAILED DESCRIPTION OF THE INVENTION

Combining amines with monochloroacetic acid (MCA) or sodium vinyl sulfonate (SVS) results in products are zwitterionic buffers that can buffer in both acidic and basic pH conditions. A limited number amines are currently used for this purpose, such as, tromethamine and ammonia. The reaction of amines, alcohols, and aminoalcohols with acrylonitrile (via the Michaels Addition), followed by reduction results in amines and polyamines that have a broad buffering range. The further derivatization of the amines and polyamines with MCA and SVS yields a further crop of amine buffers with desirable properties. One skilled in the art will recognize that MCA and sodium monochloroacetic acid (SMCA) can be used interchangeably.

The reaction of tromethamine as described above yields the products in FIG. 1. In step 1 in FIG. 1 where the acrylonitrile is added to the amine a branched structure wherein the addition of acrylonitrile results in a tertiary amine is shown. In reality, particularly when n is greater than 1, a mixture of products is obtained that is both tertiary and secondary. For the invention disclosed herein, n may equal any integer greater than zero, including 1. Controlling the reaction temperature, pressure and agitation will allow the mixture to be predominately secondary (such as when m=n) or tertiary amine, m can be any integer less than or equal n. Furthermore, this selection can take place in adding acrylonitrile to the amine that results, allowing a progressively more branched product. It is within the scope of the invention disclosed herein to include these additional types of products and their subsequent derivatives described herein.

With regard to the reaction of the polyamine resulting from the second step in FIG. 1. FIG. 1 shows the addition of only one mole of SVS or MCA, it is known in the art, that a second mole may be added to obtain a product with a second zwitterionic group. Furthermore, in the case where the product has repeated additions of acrylonitrile and reduction to the amines, the branched products may have many more zwitterionic groups. Also, it is to be noted that, while the sulfonates are shown as sodium salts, other salts and the free acids (non-salted form) are also within the scope of this invention.

Other amines that would make excellent starting materials in place of tromethamine are 2-amino-2-methyl-1-propanol, 2-amino-1-butanol, 2-amino-2-ethyl-1,3-propanediol, 2-amino-2-methyl-1,3-propanediol, and dihydroxymethylaminomethane.

Additionally, fatty amines, such as lauryl amine, coco amine, tallow amine, and oleoyl amine, and fatty ether amines, such as bis-(2-hydroxyethyl) isodecyloxypropylamine, when reacted with SVS produce mild surfactants that find utility where zwitterionic surfactants are desired, including personal care.

Other amines that are shown in FIG. 2 are produced via a similar series of reactions, except that FIG. 2 includes zwitterionic buffers from the amine 2-amino-2-methyl-1-propanol, as well as the polyamines derived from the reaction with acrylonitrile and the subsequent derivatives described above. Other amines can be utilized in addition to 2-amino-2-methyl-1-propanol to obtain excellent buffers are 2-amino-1-butanol, 2-amino-2-ethyl-1,3-propanediol, 2-amino-2-methyl-1,3-propanediol, and dihydroxymethylaminomethane. Reaction conditions could be created such that the alcohol groups on the amines listed above could be reacted with acrylonitrile as well, and then reduced to the amines and, if desired, reacted with SVS or MCA to impart zwitterionic character.

Polyamines with good properties for use in biological fermentations, purifications, storage and general handling can also be produced through the reaction of nitroalcohols and acrylonitrile, followed by reduction. Additional derivatization with SVS or MCA will result in zwitterionic buffers with a very large buffering range and capacity.

FIG. 3 shows the reaction of 2-methyl-2-nitro-1-propanol with acrylonitrile and its derivatives.

FIG. 4 shows the reaction of 2-nitro-2-ethyl-1,3-propanediol with acrylonitrile and its derivatives where x, y, and n are all integers where x and y are chosen independently, such that x+y=n and n is greater than zero.

FIG. 5 shows the reaction of 2-nitro-2-methyl-1,3-propanediol with acrylonitrile and its derivatives where x, y, and n are all integers where x and y are chosen independently, such that x+y=n and n is greater than zero.

FIG. 6 shows the reaction of tris(hydroxymethyl)nitromethane with acrylonitrile and its derivatives where x, y, z, and n are all integers where x, y and z are chosen independently, such that x+y+z=n and n is greater than zero.

FIG. 7 shows the reaction of 2-nitro-1,3-propanediol with acrylonitrile and its derivatives where x, y, and n are all integers where x and y are chosen independently, such that x+y=n and n is greater than zero.

FIG. 8 shows the reaction of 2-nitro-1-butanol with acrylonitrile and its derivatives.

FIGS. 2 through 8 are subject to the same clarifications as FIG. 1 with regard to the cyanoethylation and the formation of a more linear or branched structure as well as the addition of SVS or MCA in molar equivalents of primary amine groups or less than molar equivalents of primary amine groups present.

The buffers described thus far may also be ethoxylated, propoxylated, or butoxylated to modify their properties. Ethoxylation will tend to impart surfactancy to the resulting product. Propoxylation will add surfactancy, but also reduce the water solubility. This is useful in emulsion breaking and reverse emulsion breaking, this will also find utility in breaking up and dissolving biofilms. This is also desired in oil-field applications. Butoxylation will similarly shift the HLB to the hydrophobic. Combinations of ethoxylation, propoxylation, and butoxylation can be tailored to specific emulsion and reverse emulsion forming and breaking requirements. FIG. 9 shows alkoxylation of aminomethylpropanol. The direct 2 mole ethoxylation of 2-amino-2-methyl-1-propanol with 2 moles of ethylene oxide, as shown in FIG. 9 produces an excellent biological buffer with less chelation than 2-amino-2-methyl-1-propanol. The reaction of 2-amino-2-methyl-1-propanol with propylene oxide or butylene oxide yields a similarly less chelating product, as does the reaction with diethylene glycol. The reaction product of 2-amino-2-methyl-1-propanol with 1 mole of diethylene glycol as shown in FIG. 9 produces an ideal amine for gas scrubbing of H₂S. This product is particularly useful because it does not bind to carbon dioxide and carbon monoxide in any appreciable amount. Thus making it ideal for tail gas scrubbing and maximizing the capacity of sulfur plants in refineries. Similar performance is seen with the reaction of the following amines 2-amino-1-butanol, 2-amino-2-methyl-1,3-propanediol, 2-amino-2-ethyl-1,3-propanediol, tris(hydroxylmethyl)aminomethane, and 2-amino-1,3-propanediol.

The buffers described herein also make excellent starting materials for surfactants. FIG. 10 shows the synthesis of 2 very mild, high foaming, surfactants that are well suited for personal care applications were irritation is problematic, such as baby shampoo and face cleansers. Similar results are seen when 2-amino-1-butanol, 2-amino-2-methyl-1,3-propanediol, 2-amino-2-ethyl-1,3-propanediol, tris(hydroxylmethyl)aminomethane, and 2-amino-1,3-propanediol are used as the starting material in place of 2-amino-2-methyl-1-propanol.

Polyamines with good properties for use in biological fermentations, purifications, storage and general handling can also be produced through the reaction of nitroalkanes and acrylonitrile, followed by reduction. Additional derivatization with SVS or MCA will result in zwitterionic buffers with a very large buffering range and capacity. FIG. 11 shows the synthesis of a series of buffers with 2-nitropropane as the starting material. FIG. 12 shows the synthesis of a series of buffers with 1-nitropropane as a starting material where n and m are integers where m+n is greater than zero and n is greater than or equal to m. Branching can be imparted on the buffers described in FIGS. 11 through 14 for the polyamines that have greater than 3 amine groups by reducing the resulting nitrile or polynitrile to the polyamine and then reacting with more acrylonitrile and then reducing the resulting nitrile groups to amine groups. This can be done repeatedly. As in FIG. 1, conditions can be chosen such that a more branched product results. A more linear product is produced by simply adding all the acrylonitrile in one step, and then reducing the resulting polynitrile to the polyamine. For FIGS. 12 through 14, the zwitterionic products can be made by adding MCA or SVS as shown in FIGS. 2 through 8.

FIG. 13 shows the synthesis of a series of buffers with nitroethane as a starting material where n and m are integers where m+n is greater than zero and n is greater than or equal to m. FIG. 14 shows the synthesis of a series of buffers with nitromethane as a starting material where x, y, z and n are integers and x+y+z=n and n is greater than zero.

Several descriptions and illustrations have been presented to enhance understanding of the present invention. One skilled in the art will know that numerous changes and variations are possible without departing from the spirit of the invention. Each of these changes and variations are within the scope of the present invention. 

1. A gas scrubbing or buffering amine of the following structure:


2. A buffering amine of the following structure:

wherein A is H and B is —CH₂CH₂SO₃H.
 3. A buffering amine of the following structure:

wherein A is H and B is —CH₂COOH.
 4. A buffering amine of the following structure:

wherein A and B are H and E is —CH₂CH₂CH₂NH₂.
 5. A buffering amine of the following structure:

wherein A and E are both H and B is —CH₂CH₂CH₂NH₂.
 6. A buffering amine of the following structure:

wherein A and E are both H and B is —CH₂CH₂CH₂NHCH₂COOH.
 7. A buffering amine of the following structure:

wherein A and E are both H and B is —CH₂CH₂CH₂NHCH₂CH₂SO₃H. 